EP2547343A2 - Use of p2x purinergic receptor agonists to enhance insulin secretion in pancreatic beta cells - Google Patents
Use of p2x purinergic receptor agonists to enhance insulin secretion in pancreatic beta cellsInfo
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- EP2547343A2 EP2547343A2 EP11757131A EP11757131A EP2547343A2 EP 2547343 A2 EP2547343 A2 EP 2547343A2 EP 11757131 A EP11757131 A EP 11757131A EP 11757131 A EP11757131 A EP 11757131A EP 2547343 A2 EP2547343 A2 EP 2547343A2
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- European Patent Office
- Prior art keywords
- atp
- insulin secretion
- insulin
- human
- cells
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K31/00—Medicinal preparations containing organic active ingredients
- A61K31/70—Carbohydrates; Sugars; Derivatives thereof
- A61K31/7042—Compounds having saccharide radicals and heterocyclic rings
- A61K31/7052—Compounds having saccharide radicals and heterocyclic rings having nitrogen as a ring hetero atom, e.g. nucleosides, nucleotides
- A61K31/706—Compounds having saccharide radicals and heterocyclic rings having nitrogen as a ring hetero atom, e.g. nucleosides, nucleotides containing six-membered rings with nitrogen as a ring hetero atom
- A61K31/7064—Compounds having saccharide radicals and heterocyclic rings having nitrogen as a ring hetero atom, e.g. nucleosides, nucleotides containing six-membered rings with nitrogen as a ring hetero atom containing condensed or non-condensed pyrimidines
- A61K31/7076—Compounds having saccharide radicals and heterocyclic rings having nitrogen as a ring hetero atom, e.g. nucleosides, nucleotides containing six-membered rings with nitrogen as a ring hetero atom containing condensed or non-condensed pyrimidines containing purines, e.g. adenosine, adenylic acid
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K31/00—Medicinal preparations containing organic active ingredients
- A61K31/70—Carbohydrates; Sugars; Derivatives thereof
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P3/00—Drugs for disorders of the metabolism
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P3/00—Drugs for disorders of the metabolism
- A61P3/08—Drugs for disorders of the metabolism for glucose homeostasis
- A61P3/10—Drugs for disorders of the metabolism for glucose homeostasis for hyperglycaemia, e.g. antidiabetics
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P43/00—Drugs for specific purposes, not provided for in groups A61P1/00-A61P41/00
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P5/00—Drugs for disorders of the endocrine system
- A61P5/48—Drugs for disorders of the endocrine system of the pancreatic hormones
- A61P5/50—Drugs for disorders of the endocrine system of the pancreatic hormones for increasing or potentiating the activity of insulin
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N33/00—Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
- G01N33/48—Biological material, e.g. blood, urine; Haemocytometers
- G01N33/50—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing
- G01N33/5005—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing involving human or animal cells
- G01N33/5008—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing involving human or animal cells for testing or evaluating the effect of chemical or biological compounds, e.g. drugs, cosmetics
- G01N33/502—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing involving human or animal cells for testing or evaluating the effect of chemical or biological compounds, e.g. drugs, cosmetics for testing non-proliferative effects
- G01N33/5023—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing involving human or animal cells for testing or evaluating the effect of chemical or biological compounds, e.g. drugs, cosmetics for testing non-proliferative effects on expression patterns
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N2333/00—Assays involving biological materials from specific organisms or of a specific nature
- G01N2333/435—Assays involving biological materials from specific organisms or of a specific nature from animals; from humans
- G01N2333/575—Hormones
- G01N2333/62—Insulins
Definitions
- Diabetes mellitus is a widespread metabolic disorder characterized by high blood sugar and defects in insulin regulation. Although a number of treatments are available, the condition remains poorly controlled in many patients. Thus, there is a need for new treatments and new effective pharmaceutical compounds for use as primary or adjuvant therapeutics.
- Glucose homeostasis is tightly controlled by hormone secretion from the endocrine part of the pancreas, the islets of Langerhans. Even small physiological deviations (e.g. 10%) in plasma glucose are effectively counteracted by sharp (e.g. threefold) increases in the secretion of the islet hormones insulin or glucagon (1).
- Intra-islet autocrine and paracrine signaling are pivotal mechanisms for proper function of the islet, making islet cells extremely sensitive and responsive to plasma glucose fluctuations.
- the roles of different compounds such as GABA, glutamate, Zn 2+ , insulin, and ATP as autocrine and paracrine regulators of islet hormone release have been examined extensively (2-8). Among the different factors thought to regulate hormone release, extracellular ATP seems important because it is present in insulin-containing granules and it is released during glucose stimulation in sufficient amounts to stimulate ATP receptors. Extracellular ATP is an important
- the purinergic system comprises receptors for extracellular ATP and adenosine, the P2 and PI receptors, respectively.
- P2 purinergic receptors can be divided into two categories, i.e. the metabotropic P2Y receptors (G-protein coupled) and the ionotropic P2X receptors (Hgand-gated ion channels) (16).
- the ionotropic P2X family comprises seven subtypes designated P2Xi-P2X 7 that regulate cell function by opening cation channels permeable to Na + , K + , and Ca 2+ (15, 17).
- Activation of these channels regulates the release of neurotransmitters and hormones, either through direct Ca influx or by promoting membrane depolarization and thereby, induction of action potentials (18—21).
- pancreatic islets The role of purinergic signaling in the physiology of pancreatic islets has been studied in rodent models, but the results in the literature are conflicting (22-28).
- purinergic agonists In rat islets, purinergic agonists have been reported to increase insulin secretion (22, 28). This contrasts with a report on rat islets showing that extracellular ATP provides excitatory as well as inhibitory feedback loops for insulin secretion (23).
- extracellular ATP In mouse islets, extracellular ATP has been consistently reported to decrease glucose-induced insulin secretion (24-26).
- purinergic agonists were shown to evoke inward currents in ⁇ cells and to stimulate insulin release (29, 30), but the receptors involved were not identified. More importantly, the
- insulin granules contain ATP, and ATP is coreleased with insulin during high glucose stimulation, reaching extracellular concentrations >25 ⁇ (9-12, 33).
- Recent papers have provided evidence that smaller molecules such as ATP can be released by a kiss-and-run exocytotic mechanism, whereas insulin is retained in the granule (12, 34).
- insulin secretion shows a lower activation threshold in human islets than in mouse islets, and slight increases in insulin secretion already occur at 3 raM glucose (Fig. 6; see also ref. 35).
- ATP is likely to be coreleased with insulin at relatively low glucose concentrations. ATP is, therefore, an excellent signaling candidate for modulating the ⁇ -cell
- P2X receptors in beta cells are therefore rational targets for drugs to enhance insulin secretion. Contrary to other therapies, activation of P2X receptors likely enhances endogenous insulin secretion when beta cell are activated, that is, in the appropriate physiological context We expect that modulation of P2X receptors in beta cells will be an adjuvant therapy in the management of drug-treated diabetes.
- P2X receptor activity has emerged as a potential point of therapeutic intervention in diseases such as lower urinary tract dysfunction and irritable bowel syndrome.
- the information derived from our studies indicates that P2X receptors are also rational targets for drugs that could be used to improve glycemic control alone or in combination with oral hypoglycemic agents (e.g.
- the invention provides a method of increasing insulin secretion in a subject in need thereof, by administering an effective amount of a P2X purinergic agonist (e.g. 2-methylthio-ATP (2-meSATP), 5-bromouridine 5 -triphosphate, a benzoyl-benzoyl ATP, such as 3'-0-(4-benzoylbenzoyl)-ATP, ⁇ , ⁇ -methylene ATP, 2- meSATP, ⁇ , ⁇ -methylene ATP, or BzATP(2'(3')-0-(4-Benzoylbenzoyl)ATP)).
- a P2X purinergic agonist e.g. 2-methylthio-ATP (2-meSATP), 5-bromouridine 5 -triphosphate
- a benzoyl-benzoyl ATP such as 3'-0-(4-benzoylbenzoyl)-ATP, ⁇ , ⁇ -methylene ATP, 2- meSATP, ⁇ , ⁇ -methylene ATP
- BzATP may be considered the least toxic of these purinergic agonists.
- the subject may be any mammal that is subject to conditions in which increased insulin secretion may be desirable, particularly a primate, e.g. a human.
- the subject is suffering from diabetes mellitus, e.g. type 2 diabetes.
- the P2X purinergic agonist is a P2X 3 agonist, for example 2-methylthio-ATP (2-meSATP), 5-bromouridine 5 ⁇ triphosphate, 3'-0-(4- benzoylbenzoyl)-ATP, and ⁇ , ⁇ -methylene ATP.
- dosages of P2X purinergic agonist can be determined by routine experimentation by those of skill in the art. In one embodiment, dosages are expected to result in a concentration at the target tissue of between about 10 uM and 1 mM, e.g. between about 10 uM and 100 ⁇ .
- a P2X purinergic agonist in a pharmaceutical composition for increasing insulin secretion in a subject in need thereof, for example a subject, e.g. a human, suffering from diabetes mellitus, e.g. type 2 diabetes.
- the P2X purinergic agonist is a P2X 3 agonist, e.g. selected from the group consisting of 2-methylthio-ATP (2-meSATP), 5-bromouridine 5 -triphosphate, 3'-0-(4-ben2X)ylben2oyl)-ATP, and ⁇ , ⁇ -melhylene ATP.
- a pharmaceutical composition comprising an effective amount of a P2X purinergic agonist, e.g. a P2X 3 agonist, to stimulate insulin secretion for treatment of diabetes.
- a P2X purinergic agonist e.g. a P2X 3 agonist
- the P2X 3 agonist may be selected, for example, from the group consisting of 2-methylthio-ATP (2-meSATP), 5-bromouridine 5 - triphosphate, 3'-0-(4-benzoylbenzoyl)-ATP, and ⁇ , ⁇ -methylene ATP.
- compositions to be administered in accordance with the invention optionally include pharmaceutically acceptable diluents, carriers and excipients as is customary in the pharmaceutical arts.
- the invention also provides a means of screening for drugs compounds to be used in the methods of the invention, by screening test compounds for their ability to act specifically on the P2X3 receptor in the beta cell.
- Compounds can be screened for activity as P2X3 agonists according to the methods described herein, and compounds that exhibit such activity can be selected for further testing in vitro and in vivo to determine whether they are good candidates for pharmaceutical agents to increase insulin secretion. Therefore, also provided is a screening method for detecting a compound agent with efficacy in increasing insulin secretion in a mammal, particularly a primate, e.g. a human, comprising contacting the compound with a P2X3 receptor and measuring the activity of the receptor, e.g. by measuring an increase/decrease in insulin secretion of a cell bearing the receptor.
- pharmaceutically acceptable diluents, excipients and carriers such compounds as will be known to persons of skill in the art as being compatible with the pharmaceutical compositions and suitable for local or systemic administration to an animal, particularly a human or other primate, according to the invention.
- treatment refers to obtaining a desired pharmacologic and/or physiologic effect.
- the effect may be prophylactic in terms of completely or partially preventing a condition or disease or symptom thereof and/or may be therapeutic in terms of a partial or complete cure for a condition or disease and/or any adverse affect attributable to the condition or disease.
- Treatment covers: (a) preventing the condition or disease from occurring in an individual who is predisposed to the condition or disease but has not yet been diagnosed as having it; (b) inhibiting the condition or disease, such as, arresting its development; and (c) relieving, alleviating or ameliorating the condition or disease, such as, for example, causing regression of the condition or disease in an individual who is afflicted with the condition or disease, e.g. has been diagnosed by a medical practitioner.
- target tissue is meant a tissue or cell group wherein the compounds of the invention exert a therapeutic effect, e.g. pancreas, or pancreas islet cell.
- pharmaceutically acceptable carrier refers to a non-toxic solid, semisolid or liquid filler, diluent, encapsulating material or formulation auxiliary of any conventional type.
- a “pharmaceutically acceptable carrier” is non-toxic to recipients at the dosages and concentrations employed, and is compatible with other ingredients of the formulation.
- the carrier for a formulation containing the present therapeutic compounds and compositions preferably does not include oxidizing agents and other compounds that are known to be deleterious to such.
- Suitable carriers include, but are not limited to, water, dextrose, glycerol, saline, ethanol, buffer, dimethyl sulfoxide, Cremaphor EL, and combinations thereof.
- the carrier may contain additional agents such as wetting or emulsifying agents, or pH buffering agents. Other materials such as anti-oxidants, humectants, viscosity stabilizers, and similar agents may be added as necessary.
- Pharmaceutically acceptable salts herein include the acid addition salts (e.g. formed with a free amino group) and which are formed with inorganic acids, including, but not limited to hydrochloric or phosphoric acids, or such organic acids as acetic, mandelic, oxalic, and tartaric. Salts formed with the free carboxyl groups may also be derived from inorganic bases such as, for example, sodium, potassium, ammonium, calcium, or ferric hydroxides, and such organic bases as isopropylamine, trimethylamine, 2-ethylamino ethanol, and histidine.
- inorganic acids including, but not limited to hydrochloric or phosphoric acids, or such organic acids as acetic, mandelic, oxalic, and tartaric.
- Salts formed with the free carboxyl groups may also be derived from inorganic bases such as, for example, sodium, potassium, ammonium, calcium, or ferric hydroxides, and such organic bases as isopropylamine, tri
- pharmaceutically acceptable excipient includes vehicles, adjuvants, or diluents or other auxiliary substances, such as those conventional in the art, which are readily available to the public.
- pharmaceutically acceptable auxiliary substances include pH adjusting and buffering agents, tonicity adjusting agents, stabilizers, wetting agents and the like.
- effective amounts of the pharmaceutical compounds are administered to an individual, where "effective amount” means a dosage sufficient to produce a desired result.
- the desired result is stimulation of insulin secretion to a desirable level.
- the amount of the therapeutic agent to be administered varies depending upon the manner of administration, the age and body weight of the subject patient, and with the subject's symptoms and condition. A compound is administered at a dosage that best achieves medical goals with the fewest corresponding side effects.
- compositions to be used in the instant invention will contain from less than about 1% up to about 99% of the active ingredient(s).
- the appropriate dose to be administered depends on the subject to be treated, such as the general health of the subject, the age of the subject, the state of the disease or condition, the weight of the subject, etc.
- the pharmaceutically acceptable excipients such as vehicles, adjuvants, carriers or diluents, are conventional in the art. Suitable excipient vehicles are, for example, water, saline, dextrose, glycerol, ethanol, or the like, and combinations thereof. In addition, if desired, the vehicle may contain minor amounts of auxiliary substances such as pH adjusting and buffering agents, tonicity adjusting agents, stabilizers, wetting agents or emulsifying agents. Actual methods of preparing such dosage forms are known, or will be apparent, to those skilled in the art See, e.g., Remington's Pharmaceutical Sciences, Mack Publishing Company, Easton, Pa., 17th edition, 1985. The composition or formulation to be administered will, in any event, contain a quantity of the agent adequate to achieve the desired state in the individual being treated.
- the therapeutic compounds can be formulated into preparations for injection by dissolving, suspending or emulsifying them in an aqueous or non-aqueous solvent, such as vegetable or other similar oils, including corn oil, castor oil, synthetic aliphatic acid glycerides, esters of higher aliphatic acids or propylene glycol; and if desired, with conventional additives such as solubilizers, isotonic agents, suspending agents, emulsifying agents, stabilizers and preservatives.
- an aqueous or non-aqueous solvent such as vegetable or other similar oils, including corn oil, castor oil, synthetic aliphatic acid glycerides, esters of higher aliphatic acids or propylene glycol
- solubilizers isotonic agents
- suspending agents emulsifying agents, stabilizers and preservatives.
- administration include rectal, transdermal, intravenous, intramuscular, respiratory (e.g. through an inhalation device) intranasal, and the like.
- Effective dosages can be determined by routine, conventional procedures.
- BzATP or ⁇ , ⁇ -methylene ATP can be administered at a concentration of about SO uM.
- FIG. 1 ATP is secreted by human islets at low glucose concentrations, and it amplifies insulin secretion during glucose stimulation.
- B Quantification of the results shown in A. A[Insulin] ( ⁇ U/ ⁇ g DNA), change in insulin secretion from prestimulus levels.
- C Insulin secretion induced by raising glucose from
- apyrase (5 U/mL) decreased glucose-induced insulin release by ⁇ 15%.
- Adding adenosine deaminase (ADA; 1 U/mL) to degrade adenosine did not change the effect of apyrase on glucose-stimulated insulin secretion. Control is
- Asterisks denote statistical significance (ANOVA followed by multiple comparisons versus control group in Bonferroni t test; P ⁇ 0.0S).
- FIG. 1 Endogenously released ATP amplifies glucose-induced insulin secretion in human islets through P2X receptors.
- Insulin secretion induced by raising glucose from 3 mM to 11 mM was reduced in the presence of the P2X receptor antagonists iso-PPADS (SO uM; red symbols) and oATP (500 uM; green symbols; representative traces of at least three perifusions). Bar denotes
- 1 1G indicates lOmin of elevated glucose (11 mM).
- B Quantification of the results shows the effects of suramin (100 ⁇ ), iso-PPADS (50 uM), oATP (500 uM),MRS2159 (10 uM), Brilliant Blue G (BBG; 1 ⁇ ), KN-62 (1 ⁇ ), reactive blue 2 (RB2; 50 uM), andMRS2179 (10 uM) on themagnitude of glucose-induced insulin response (peak amplitudes; n 3).
- Suramin, iso- PPADS, and oATP reduced insulin release by 40%, 30%, and 65%, respectively.
- the specificity of the antagonists is indicated at the top of the panel. Asterisks denote statistical significance (ANOVA followed by multiple comparisons versus control group in Bonferroni t test; P ⁇ 0.05).
- C ATP concentration- response relationships for insulin secretion in human (n - 3 islet preparations;
- n - 3 islet preparations A molecular marker was run in parallel.
- D ATP S (50 ⁇ ) induced [Ca 2+ ]i responses in individual human islet cells loaded with Fura-2. These cells responded to stimulation with high glucose (1 1 raM; black traces, representative of 8 cells). Most of the alpha cells, identified by their response to kainate (100 uM), did not respond to
- ATP S (gray traces; representative of 25 cells). Bars indicate the duration of the stimulus.
- FIG. 4 ATP-induced insulin release by human ⁇ cells requires P2X receptor activation and Ca 2+ influx through voltage-gated Ca 2+ channels.
- Insulin secretion induced by ATP (10 uM) was reduced in nominal 0 Ca 2* (+1 mM EGTA; red symbols) or in the presence of the Ca 2+ channel blockers Cd 2+ (100 uM; blue symbols) or nifedipine (Nife; 10 ⁇ ; gray
- FIG. 5 Proposed model for the positive autocrine feedback lcopmediated by ATP in human ⁇ cells.
- ATP coreleased with insulin, activates ionotropic P2X3 receptors in the ⁇ -cell plasma membrane. This opens the cation selective P2X3 channel pore to let Na + and Ca 2+ flow into the ceil (1).
- the resultantmembrane depolarization and increase in action potential frequency increases Ca 2+ flux through high voltage-gated Ca2+ channels.
- Increased [Ca 2* ]i (2) stimulates insulin secretion, fn the absence of P2X3 activation, insulin secretion is diminished (Right).
- Insulin secretion was stimulated in human islets by raising the glucose concentration from 1 mM to 3 mM. Average traces of insulin secretion are shown (n - 8 perifusions).
- FIG. 7 Species differences in ATP-induced insulin secretion. Monkey islets (black symbols) responded to increasing concentrations of ATP like human islets.
- Islet Isolation Islets were isolated as previously described (57). Monkey islets were isolated from cynomolgus monkeys (Macacca fascicularis) >4 years of age at the time of pancreas procurement, as previously described (58). Pig pancreata were procured from the local slaughterhouse. Mice (C57BL/6) and rat (Lewis rat; Harlan) islets were isolated using a rodent-islet isolation technique (59). All animal protocols were approved by the University of Miami Care and Use Committee.
- Human pancreatic islets were obtained from the Human Islet Cell Processing Facility at the Diabetes Research Institute, University of Miami Miller School of Medicine or from the Islet Cell Resource basic science islet distribution program, Islet Cell Resource Centers (ICRs) Consortium, Division of Clinical Research, National Center for Research Resources, National Institutes of Health. Human islets were dissociated into single cells using enzyme-free cell dissociation buffer (Invitrogen).
- Islets and islets cells from Q:l all species were cultured identically (37 °C and 5%CO 2 ) inCMRL Q:2 medium- 1066 (Invitrogen), niacinamide (10 mM; Sigma), ITS (BD Biosciences), Zn 2 S0 4 (15 uM, Sigma), GlutaMAX (2 mM; Invitrogen), Hepes (25 mM; Sigma), FBS (10%; Invitrogen), and penicillin-streptomycin (100 IU/mL-100 ⁇ g/mL; Invitrogen).
- [Ca 2+ ]i Imaging was performed as previously described (8, 36). Dispersed islet cells were immersed in Hepes-buffered solution (125mMNaCl, 5.9mMKCl, 2.56mMCaCl 2 , lmMMgCl 2 , 25mMHepes, and 0.1%BSA, pH7.4).
- Glucose was added to give a final concentration of 3 mM.
- Islets or dispersed islet cells were incubated in Fura-2 AM (2 ⁇ ; 1 h) and placed in a closed small volume imaging chamber (Warner Instruments). Stimuli were applied with the bathing solution.
- Islets loaded with Fura-2 were excited alternatively at 340 and 380 nm with a monochromator light source (Cairn Research Optoscan Monochromator; Cairn Research Ltd). Images were acquired with a Hamamatsu camera (Hamamatsu) attached to a Zeiss Axiovert 200 microscope (Carl Zeiss).
- Beta cells were distinguished from other endocrine cells by their [Ca 2+ ]i responses to high glucose concentrations, and alpha cells were identified by their [Ca 2+ ]j responses to kainate (glutamate receptor agonist) (8, 36).
- Insulin and Glucagon Secretion were measured as previously described (8, 36).
- a high-capacity automated perifusion system was developed to dynamically measure hormone secretion from pancreatic islets.
- a low pulsatility peristaltic pump pushed Hepes-buffered solution (125 ra NaCl, 5.9 mM KCI, 2.56 mM CaCl 2 , 1 mM MgClj, 25 mM Hepes, and 0.1% BSA, pH 7.4 at a perifusion rate of 100 ⁇ 17 ⁇ ) through a column containing 100 pancreatic islets immobilized in Bio-Gel P-4 Gel (BioRad).
- glucose concentration was adjusted to 3 mM for all experiments.
- Stimuli were applied with the perifusion buffer.
- the perifusate was collected in an automatic fraction collector designed for a 96-well plate format
- the columns containing the islets and the perifusion solutions were kept at 37°C, and the perifusate in the collecting plate was kept at ⁇ 4°C.
- Perifusates were collected every 1 min. Hormone release in the perifusate was determined with the human or mouse Endocrine LINCOpIex Kit following manufacturer's instructions (Lincoresearch). Human islet preparations varied considerably in their quality. Thus, the magnitudes of the responses to different stimuli were compared with the same recording or using recordings from the same preparation.
- antisomatostatin antibodies (1:1,000; Accurate Chemical & Scientific).
- purified peptide 50 ug was preincubated with purinergic receptor primary antibodies (1 ⁇ g) for 1 h (room temperature).
- Pancreatic sections containing islets were examined using a Zeiss LSM 510 scanning confocal microscope (viewed at magnifications *20 and *40).
- SenseQ:6 strand probes were used as a negative control for each P2XR- Immunofluorescence localization of antigens, double-labeled immunofluorescence, and confocal microscopy were carried out as previously described (60).
- Antibodies used were mouse antiinsulin (1/1,000; Sigma), guinea pig antiglucagon (1/50; Dako), Alexa Fluor 488-conjugated goat anti-mouse (1/400; Molecular Probes), and Alexa Fluor 568-conjugated goat anti-guinea pig (1/400; Molecular Probes).
- DAPI was used as nuclear counterstaining.
- Hybridization and immunofluorescence signals were merged by digitally converting the chromogen signal into a color signal in RGB scale. The hybridization signal was pseudocolored in red.Q:7 This signal was then merged with the insulin signal (green).
- ATP As an autocrine/paracrine signal, we manipulated ATP degradation and thus, the concentration of endogenously released ATP in isolated human islets and recorded changes in hormone secretion by using a perifusion assay of dynamic secretory responses (36). Released ATP is rapidly cleared by membrane ecto-ATPase, such as apyrase, that converts ATP into adenosine (37, 38). Ecto-ATPases are crucial in the duration and magnitude of purinergic signaling
- a functional apyrase (CD39) has been shown to be expressed in human ⁇ cells
- Apyrase may decrease glucose-induced insulin release either by reducing extracellular ATP or by increasing adenosine; this may act on PI receptors to inhibit insulin release (43).
- Degrading adenosine with adenosine deaminase did not change the effect of apyrase on glucose-stimulated insulin secretion (Fig. ID), indicating that the presence of adenosine did not contribute to the inhibition of the insulin response. Accordingly, neither the PI receptor antagonist CGS1S943 (10 uM) nor adenosine (100 uM) altered glucose-induced insulin secretion (Discussion).
- Fig. 2 A Insulin secretory responses to glucose stimulation were reduced in the presence of suramin (50 uM; a broad antagonist of P2 receptors), iso-PPADSQ:9 (50 ⁇ ; an antagonist for P2X1, P2X2, P2X3, and P2X5 receptors), and oxidized ATP (oATP; 500 ⁇ ; an antagonist for P2X2, P2X3, and P2X7 receptors) by 40%, 30%, and 65%, respectively (Fig. 2B).
- suramin 50 uM
- iso-PPADSQ:9 50 ⁇ ; an antagonist for P2X1, P2X2, P2X3, and P2X5 receptors
- oxidized ATP oxidized ATP
- 500 ⁇ an antagonist for P2X2, P2X3, and P2X7 receptors
- Antagonists for P2Y receptors [reactive blue 2 (50 uM) and MRS2179 (10 uM); specific for the P2Y1 receptor; Fig. 2B)] or the PI receptor [CGS15943 (10 ⁇ )] did not inhibit glucose induced insulin release.
- ATPyS 50 uM; a nonhydrolysable ATP analog
- BzATP 50 uM
- P2X and P2X 3 agonist ⁇ , ⁇ -methylene ATP (50 uM) elicited strong insulin responses
- P2Y receptors were not involved in the response to endogenousty released ATP during glucose stimulation but could be directly activated by the selective agonists UTP (100 uM; an agonist of P2Y 2 , P2Y 4 , and P2Y 6 ) and ADP (100 ⁇ ; an agonist of P2Yj, P2Y
- Beta cells identified by their response to high glucose (11 or 16 mM) (8), responded toATPyS (50 ⁇ ) and BzATP(50 ⁇ M)with rapid
- the Ca 2+ needed for ATP- induced insulin secretion could enter through the P2X receptor pore or voltage-dependent Ca 2+ channels, which are activated as a consequence of P2X receptor-mediated membrane depolarization.
- the broad-spectrum voltage-gated Ca2+ channel blocker Cd 2+ (100 uM; a concentration not affecting Ca 2* influx through P2X receptors) (46, 47) and the L-type Ca 2+ channel blocker nifedipine (10 uM) abolished insulin responses to ATP (Fig. 4B) or ⁇ , ⁇ meATP.
- ATP failed to increase insulin secretion in the presence of Cd 2+ or nifedipine indicates that P2X receptor activation caused sufficient depolarization to activate voltage-dependent Ca 2* channels (15, 17, 47), particularly L-type Ca 2+ channels critical to the potential firing in human ⁇ cells (48).
- [Ca 2+ ]j responses to ATP were blocked by isoPPADS by -80% in human ⁇ cells (Fig. 4C).
- ATP is a signal serving in an autocrine positive feedback loop for insulin release subsequent to glucose stimulation.
- Our results showing substantial differences between human ⁇ cells and rodent ⁇ cells in terms of ATP signaling reiterate that the structure and function of the human islets are distinctive (31 , 32).
- Our studies revealed that ATP is a potent stimulator of insulin release in islets of primate species but not in those of the other examined species. Because we used the same technical approach for all species tested, the most likely explanation is that
- ATP signaling differs between species.
- P2Y receptors predominantly through P2Y receptors, not ⁇ 2 ⁇ receptors (26, 51).
- P2X1 and P2X3 receptors were identified in isolated single mouse ⁇ cells (30), and P2X1, P2X2, P2X3, P2X4, and P2X6 have been detected in the mouse and rat pancreas (28, 52, 53).
- P2X3 receptors most likely contribute to shape the electric activity of human ⁇ cells.
- Direct application of ATP at 3 mM glucose elicited large insulin and [Ca 2+ ]j responses that were comparable with those elicited by high glucose or KC1 depolarization.
- Blocking ATP receptors with P2X receptor antagonists reduced the insulin response to high glucose by up to 65% (Fig. 2), revealing a strong contribution of ATP receptor activation to the response.
- Our results further indicated that most of the human ⁇ -cell response to ATP was mediated by ionotropic P2X receptors (Fig. 4).
- P2X3 receptors in human ⁇ cells P2X1, P2X2, P2X4, and P2X6 receptors, reported to be expressed in rodent ⁇ cells (28, 30, 52, S3), could not be detected in human ⁇ cells.
- our studies revealed the presence of P2X5 and P2X7. Therefore, P2X receptors in human ⁇ cells may exist as monomers or heteromers of combinations of P2X3, P2XS, and P2X7. The presence of a
- P2X7 receptors are unlikely to form heteromeric receptors with P2X3 (17) but may work as homomeric receptors. Homomeric P2X7 receptors, however, likely do not participate in normal ⁇ -cell physiology, because their activation requires ATP concentrations >100 uM (17). This is in agreement with our results showing that P2X7 receptor antagonists did not affect the positive autocrine feedback loop mediated by ATP. Under physiological conditions, the most likely scenario is that P2X3 homomeric receptors are mediating the positive autocrine feedback loop for the insulin release that we are describing.
- Autocrine loops with positive feedback allow cells to modulate the amplitude and the duration of the signaling response to external stimuli (56).
- ATP functions in an automodu!atory system that, when activated by an increase in blood glucose, adds speed and sensitivity to the ⁇ -cell secretory response.
- the ⁇ cell secretes ATP along with insulin when the glucose concentration increases. Released ATP then activates P2X3 receptors in the ⁇ -cell plasma membrane. Activation of P2X3 receptors leads to membrane depolarization mediated by Ca2+ and Na+ influx (17) and subsequent opening of voltage-gated Ca2+ channels. This results in increased [Ca2+]i and enhanced insulin secretion.
- This positive feedback allows the ⁇ cell to translate small changes in plasma glucose into large alterations in insulin release.
- positive ATP autocrine signaling may explain how adequate and fast insulin release can be achieved in response to modest physiological changes in blood glucose concentration.
- Kisanuki K, et al. ( 1995) Expression of insulin receptor on clonal pancreatic alpha cells and its possible role for insulin-stimulated negative regulation of glucagon secretion. Diabetologia 38:422-429.
- pancreatic ⁇ -cell function pancreatic ⁇ -cell function.
- Burnstock G (2006) Pathophysiology and therapeutic potential of purinergic signaling. Pharmacol Rev 58:58-86. Fields RD, Burnstock G (2006) Purinergic signaling in neuron-glia interactions. Nat Rev Neurosci 7:423-436.
- Knott TK Velazquez-Marrero C, Lemos JR (2005) ATP elicits inward currents in isolated vasopressinergic neurohypophysial terminals via P2X2 and P2X3 receptors. PflugersArch 450:381-389.
- Extracellular ATP and zinc are co-secreted with insulin and activate multiple P2X purinergic receptor channels expressed by islet ⁇ -cells to potentiate insulin secretion.
- Bo X et al. (2003) Pharmacological and biophysical properties of the human P2X5 receptor. Mol Pharmacol 63:1407-1416. 56. Shvartsman SY, et al. (2002) Autocrine loops with positive feedback enable context-dependent cell signaling. Am J Physiol Cell Physiol 282:C545-C559.
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